Patents by Inventor Sarah Baker

Sarah Baker has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Patent number: 11938825
    Abstract: An example system includes a vehicle having a prime mover motively coupled to a drive line; a motor/generator selectively coupled to the drive line, and configured to selectively modulate power transfer between an electrical load and the drive line; a battery pack; a DC/DC converter electrically interposed between the motor/generator and the electrical load, and between the battery pack and the electrical load, the DC/DC converter comprising a DC/DC converter housing; and a covering tray positioned over a plurality of batteries of the battery pack, the covering tray comprising a connectivity layer configured to provide electrical connectivity to terminals of the plurality of batteries.
    Type: Grant
    Filed: December 17, 2021
    Date of Patent: March 26, 2024
    Assignee: EATON INTELLIGENT POWER LIMITED
    Inventors: Nihal Sukhatankar, Mahesh Prabhakar Joshi, Shivaprasad Vithal Goud, Thomas Joseph Stoltz, Matthew Richard Busdiecker, Kaylah J. Berndt, Glenn Clark Fortune, Sarah Elizabeth Behringer, Mark Steven George, Dennis Dukaric, Thomas Alan Genise, Gary Baker, Tissaphern Mirfakhrai, Elizabeth Jane Mercer, Viken Rafi Yeranosian, Lesley Earl Candler, Nicole Downing, Lalit Murlidhar Patil, Suyog Shekhar Kulkarni, Sunil Kumar Kunche, Rishabh Kumar Jain, Juan Chen
  • Publication number: 20240013975
    Abstract: A magnet includes a three-dimensional structure with nanoscale features, where the three-dimensional structure has a near net shape corresponding to a predefined shape.
    Type: Application
    Filed: June 15, 2023
    Publication date: January 11, 2024
    Inventors: Sarah Baker, Joshua Kuntz, Scott K. Mccall, Christine A. Orme, Alexander A. Baker, Jonathan R. I. Lee
  • Publication number: 20230343513
    Abstract: A method of forming a magnet includes forming a structure by electrophoretic deposition (EPD), and after forming the structure, sintering the formed structure to form a magnet. The forming the structure by EPD includes adding a plurality of first particles having magnetic anisotropy to an EPD chamber and applying a voltage differential across electrodes of the EPD chamber to create an electric field in the EPD chamber for causing electrophoretic deposition of the first particles above a first of the electrodes for forming a first layer comprising the first particles.
    Type: Application
    Filed: June 29, 2023
    Publication date: October 26, 2023
    Inventors: Scott K. McCall, Sarah Baker, Joshua Kuntz, Jonathan R. I. Lee, Christine A. Orme, Marcus A. Worsley, Alexander A. Baker, Matthew A. Worthington
  • Publication number: 20230321527
    Abstract: Green light therapy includes the showing of results of training in real time. This has been shown to increase the overall output and efficacy of the training regimen using the equipment. A sensor and programming are used with different training equipment for training, rehabilitation, or muscle building exercises for use with neuromuscular disorders to provide the real time feedback to the user of the equipment. The feedback will aid in obtaining the desired output by the user and to attempt to maintain the desired output throughout the training session. Thus, the feedback can help improve the results of the training for user.
    Type: Application
    Filed: September 26, 2022
    Publication date: October 12, 2023
    Inventors: Max Kurz, Brad Corr, Sarah Baker
  • Publication number: 20230302727
    Abstract: The present disclosure relates to a method for additively manufacturing a part. The method may involve using a reservoir to hold a granular material feedstock, and using a nozzle in communication with the reservoir to release the granular material feedstock in a controlled fashion from the reservoir to form at least one layer of a part. The method may further involve using an excitation source for applying a signal to the nozzle which induces a controlled release of the granular material feedstock from the nozzle as needed to pattern the granular material feedstock as necessary to form a layer of the part.
    Type: Application
    Filed: May 19, 2023
    Publication date: September 28, 2023
    Inventors: Nikola DUDUKOVIC, Roger AINES, Sarah BAKER, Joshua R. DEOTTE, Eric B. DUOSS, Jeremy Taylor FEASTER, Alexandra GOLOBIC, Julie MANCINI, Christopher M. SPADACCINI, Seth Evan WATTS, Michael John TROKSA
  • Publication number: 20230275238
    Abstract: Disclosed are flow-through electrode devices and techniques for making flow-through electrodes. In one aspect, a flow through electrode apparatus comprises one or more fiber layers. Each fiber layer comprises a plurality of fibers oriented to be orthogonal to a flow direction of a fluid. The plurality of fibers are configured to cause an inertial flow of the fluid around the plurality of fibers at a first flow rate of the fluid.
    Type: Application
    Filed: March 11, 2022
    Publication date: August 31, 2023
    Inventors: Victor Alfred Beck, Sarah Baker, Swetha Chandrasekaran, Eric Duoss, Jean-Baptiste Forien, Anna Nikolaevna Ivanovskaya, Marcus Worsley
  • Patent number: 11735359
    Abstract: In one embodiment, a magnet includes a plurality of layers, each layer having a microstructure of sintered particles. The particles in at least one of the layers are characterized as having preferentially aligned magnetic orientations in a first direction.
    Type: Grant
    Filed: June 27, 2018
    Date of Patent: August 22, 2023
    Assignee: Lawrence Livermore National Security, LLC
    Inventors: Scott K. McCall, Sarah Baker, Joshua Kuntz, Jonathan R. I. Lee, Christine A. Orme, Marcus A. Worsley, Alexander A. Baker, Matthew A. Worthington
  • Patent number: 11715592
    Abstract: In one embodiment, a magnet includes a three-dimensional structure with nanoscale features, where the three-dimensional structure has a near net shape corresponding to a predefined shape.
    Type: Grant
    Filed: September 4, 2018
    Date of Patent: August 1, 2023
    Assignee: Lawrence Livermore National Security, LLC
    Inventors: Sarah Baker, Joshua Kuntz, Scott K. Mccall, Christine A. Orme, Alexander A. Baker, Jonathan R. I. Lee
  • Publication number: 20230219058
    Abstract: An ink for three dimensional printing a ceramic material includes metal oxide nanoparticles and a polymer resin, where a concentration of the metal oxide nanoparticles is at least about 50 wt % of a total mass of the ink. A method of forming a porous ceramic material includes obtaining an ink, where the ink comprises a mixture of metal oxide nanoparticles and a polymer, forming a body from the ink, curing the formed body, heating the formed body for removing the polymer and for forming a porous ceramic material from the metal oxide nanoparticles. The forming the body includes an additive manufacturing process with the ink.
    Type: Application
    Filed: March 22, 2023
    Publication date: July 13, 2023
    Inventors: Patrick Campbell, Sarah Baker, Maira R. Ceron Hernandez, Jennifer Marie Knipe, Joshuah K. Stolaroff
  • Patent number: 11697246
    Abstract: The present disclosure relates to an additive manufacturing system. In one embodiment the system makes use of a reservoir for holding a granular material feedstock. A nozzle is in communication with the reservoir for releasing the granular material feedstock in a controlled fashion from the reservoir to form at least one layer of a part. An excitation source is included for applying a signal which induces a controlled release of the granular material feedstock from the nozzle as needed, to pattern the granular material feedstock as necessary to form a layer of the part.
    Type: Grant
    Filed: October 18, 2019
    Date of Patent: July 11, 2023
    Assignee: Lawrence Livermore National Security, LLC
    Inventors: Nikola Dudukovic, Roger Aines, Sarah Baker, Joshua R. Deotte, Eric B. Duoss, Jeremy Taylor Feaster, Alexandra Golobic, Julie Mancini, Christopher M. Spadaccini, Seth Evan Watts, Michael John Troksa
  • Patent number: 11638907
    Abstract: In accordance with one aspect of the presently disclosed inventive concepts, a porous ceramic structure includes a three-dimensional printed structure having predefined features, where the three-dimensional structure has a geometric shape. The average length of the features may be at least 10 microns. The three-dimensional structure includes a ceramic material having an open cell structure with a plurality of pores, where the pores form continuous channels through the ceramic material from one side of the ceramic material to an opposite side of the ceramic material.
    Type: Grant
    Filed: December 6, 2019
    Date of Patent: May 2, 2023
    Assignee: Lawrence Livermore National Security, LLC
    Inventors: Patrick Campbell, Sarah Baker, Maira Ceron Hernandez, Jennifer Marie Knipe, Joshuah K. Stolaroff
  • Publication number: 20230098711
    Abstract: Methods of forming such microcapsules, in accordance with some embodiments, include: emulsifying at least one biocatalyst in a polymer precursor mixture; emulsifying the polymer precursor mixture in an aqueous carrier solution; crosslinking one or more polymer precursors of the polymer precursor mixture to form a plurality of microcapsules each independently comprising: a polymeric shell permeable to one or more target gases; and at least one biocatalyst disposed in an interior of the polymeric shell. In further embodiments, corresponding methods of using the inventive microcapsules for catalyzing one or more target gases using include: exposing a plurality of the biocatalytic microcapsules to the one or more target gases.
    Type: Application
    Filed: November 22, 2022
    Publication date: March 30, 2023
    Inventors: Sarah Baker, Joshuah K. Stolaroff, Congwang Ye
  • Patent number: 11542531
    Abstract: According to one embodiment, a microcapsule for selective catalysis of gases, the microcapsule comprising: a polymeric shell permeable to one or more target gases; and at least one biocatalyst disposed in an interior of the polymeric shell. In more embodiments, methods of forming such microcapsules include: emulsifying at least one biocatalyst in a polymer precursor mixture; emulsifying the polymer precursor mixture in an aqueous carrier solution; crosslinking one or more polymer precursors of the polymer precursor mixture to form a plurality of microcapsules each independently comprising: a polymeric shell permeable to one or more target gases; and at least one biocatalyst disposed in an interior of the polymeric shell. In further embodiments, corresponding methods of using the inventive microcapsules for catalyzing one or more target gases using include: exposing a plurality of the biocatalytic microcapsules to the one or more target gases.
    Type: Grant
    Filed: January 20, 2017
    Date of Patent: January 3, 2023
    Assignee: Lawrence Livermore National Security, LLC
    Inventors: Sarah Baker, Joshuah K. Stolaroff, Congwang Ye
  • Publication number: 20220255165
    Abstract: Disclosed are electrochemical reactors with electrodes that have variable porosity across the electrode. The electrodes are designed and micro-architected to have variable porosity and 3D flow. In one aspect, an electrochemical cell apparatus is disclosed. The apparatus includes an electrochemical vessel and an electrochemical fluid contained in the electrochemical vessel. The apparatus further includes a porous electrode submerged in the electrochemical fluid in the electrochemical vessel, the porous electrode having different porosities in different areas of the porous electrode. The different porosities inhibit electrochemical fluid flow and increase electrical conductivity in first areas of the porous electrode with decreased porosity compared to second areas, and enable increased electrochemical fluid flow and decrease electrical conductivity in the second areas of the porous electrode with increased porosity compared to the first areas.
    Type: Application
    Filed: February 8, 2022
    Publication date: August 11, 2022
    Inventors: Victor Alfred Beck, Sarah Baker, Jonathan Tesner Davis, Eric Duoss, Daniel Tortorelli, Seth Evan Watts, Marcus A. Worsley
  • Patent number: 11305252
    Abstract: An ultra low density film and an ultra low density solid material are produced by the steps of providing a vessel, introducing two immiscible fluids into the vessel, adding nanocrystals to at least one of the two immiscible fluids, applying a shear force to the two immiscible fluids and the nanocrystals in a manner that causes the nanocrystals to self-assemble and form colloidosomes. The colloidosomes amass and evaporation of the two fluids produces dried colloidosomes. The ultra low density self-assembled colloidosomes are hollow self-assembled colloidosomes, which are formed into the ultra-low density film and the ultra-low density solid.
    Type: Grant
    Filed: October 24, 2018
    Date of Patent: April 19, 2022
    Assignees: Lawrence Livermore National Security, LLC, Carnegie Mellon University
    Inventors: Christine A Orme, Sarah Baker, Yixuan Yu, Shelley L Anna, Charles Sharkey
  • Publication number: 20220064806
    Abstract: System and method relates to an advanced manufactured vapor-fed electrochemical reactor (AM-VFR) system comprising a cathode gas compartment comprising a first inlet, and a first outlet, a catholyte compartment having a centrally located window for a cathode and a membrane, a second inlet, a second outlet, and a reference electrode, an anolyte compartment having a centrally located window for the membrane and an anode, a third inlet and a third outlet and an anode gas compartment having a fourth inlet and a fourth outlet, wherein the cathode, wherein the cathode is disposed between the cathode gas compartment and the catholyte compartment, wherein the membrane is disposed between the catholyte compartment and the anolyte compartment, wherein the anode is disposed between the anolyte compartment and the anode gas compartment, and wherein one or more of the cathode gas compartment, the catholyte compartment, the anolyte compartment and the anode gas compartment are made of a 3D printing plastic.
    Type: Application
    Filed: September 2, 2020
    Publication date: March 3, 2022
    Inventors: Jeremy Taylor Feaster, Sarah Baker, Daniel Corral, Eric Duoss
  • Patent number: 11130131
    Abstract: An engineered unit cell is disclosed for flowing a fluid therethrough in three dimensions. The unit cell may have a substrate with a plurality of flow channels around and between struts formed within the substrate. The struts may each be formed with a desired shape and orientation within the substrate to achieve a desired degree of fluid flow through the flow channels, in each of one of three dimensions, through the unit cell.
    Type: Grant
    Filed: September 26, 2019
    Date of Patent: September 28, 2021
    Assignee: Lawrence Livermore National Security, LLC
    Inventors: Joshua R. Deotte, Sarah Baker, Eric Duoss, Jennifer Marie Knipe, Fang Qian, Samantha Ruelas
  • Publication number: 20210094036
    Abstract: An engineered unit cell is disclosed for flowing a fluid therethrough in three dimensions. The unit cell may have a substrate with a plurality of flow channels around and between struts formed within the substrate. The struts may each be formed with a desired shape and orientation within the substrate to achieve a desired degree of fluid flow through the flow channels, in each of one of three dimensions, through the unit cell.
    Type: Application
    Filed: September 26, 2019
    Publication date: April 1, 2021
    Inventors: Joshua R. DEOTTE, Sarah BAKER, Eric DUOSS, Jennifer Marie KNIPE, Fang QIAN, Samantha RUELAS
  • Publication number: 20210077999
    Abstract: The present disclosure relates to an engineered, additively manufactured, microfluidic cellular structure formed from a plurality of cells, wherein the cells are each formed from a plurality of interconnected elements. The cells have voids and each cell is open at upper ends thereof. The cells each communicate at a point below its upper end with a common channel. The cells are each configured to accept a fluid and operate to channel the fluid into the common channel and to hold the fluid received therein for later selective withdrawal from the structure.
    Type: Application
    Filed: November 13, 2020
    Publication date: March 18, 2021
    Inventors: Nikola DUDUKOVIC, Sarah BAKER, James Timothy CAHILL, Jonathan Tesner DAVIS, Joshua R. DEOTTE, Karen Ruth DUBBIN, Eric B. DUOSS, Erika Jo FONG, Hawi Bacha GEMEDA, Fang QIAN
  • Publication number: 20210053056
    Abstract: The present disclosure relates to a computer aided design (CAD) manufactured lattice structure. The structure may have a plurality of tessellated cells formed from a plurality of interconnected struts, with the interconnected struts formed from a curable resin. The interconnecting struts form voids within each cell, with the voids communicating with one another. The struts may be formed such that the voids have a non-uniform dimension to create a varying porosity within the lattice structure.
    Type: Application
    Filed: August 23, 2019
    Publication date: February 25, 2021
    Inventors: Nikola DUDUKOVIC, Sarah BAKER, Victor Alfred BECK, Swetha CHANDRASEKARAN, Joshua R. DEOTTE, Eric B. DUOSS, Jeremy Taylor FEASTER, Jennifer Marie KNIPE, Julie MANCINI, James OAKDALE, Fang QIAN, Marcus A. WORSLEY